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Computer simulation study on the self-assembly of tethered nanoparticles with tunable shapes

We built a tethered nanoparticle (TNP) model that is composed of a nanoparticle with a hydrophobic tethered polymer chain. The shape of the nanoparticle can be tuned from a pure rigid cube to a soft sphere, mimicking the increase of grafting density on the nanocube surfaces. With this model, we stud...

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Autores principales: Lu, Sheng-Fang, Li, Bing-Yu, Li, Yan-Chun, Lu, Zhong-Yuan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9059562/
https://www.ncbi.nlm.nih.gov/pubmed/35517998
http://dx.doi.org/10.1039/c8ra09635j
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author Lu, Sheng-Fang
Li, Bing-Yu
Li, Yan-Chun
Lu, Zhong-Yuan
author_facet Lu, Sheng-Fang
Li, Bing-Yu
Li, Yan-Chun
Lu, Zhong-Yuan
author_sort Lu, Sheng-Fang
collection PubMed
description We built a tethered nanoparticle (TNP) model that is composed of a nanoparticle with a hydrophobic tethered polymer chain. The shape of the nanoparticle can be tuned from a pure rigid cube to a soft sphere, mimicking the increase of grafting density on the nanocube surfaces. With this model, we study the self-assembly of TNPs in dilute solution using a dissipative particle dynamics simulation technique, and especially focus on the influence of particle shape, tethered chain length, and grafting density on the self-assembly structures. Some intriguing aggregates such as spherical micelles, pearl-necklace-like structures, cubic columnar structures, handshake structures, core–shell–corona micelles, and four-patch micelles have been observed when varying the interactions between cubes and solvents and the lengths of tethered chain. Modifying the nanocube surface with some hydrophilic grafted chains helps the TNPs form small micelles. Increased steric repulsion due to chain overlapping at larger grafting densities results in shape transformation of the nanoparticle from a rigid cube to a soft sphere. In these cases, the self-assembled structures are characterized by the packing of nanoparticles on the micelle surface, and the typical packing mode turns from rectangular (typical for cubes) to hexagonal (typical for spheres).
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spelling pubmed-90595622022-05-04 Computer simulation study on the self-assembly of tethered nanoparticles with tunable shapes Lu, Sheng-Fang Li, Bing-Yu Li, Yan-Chun Lu, Zhong-Yuan RSC Adv Chemistry We built a tethered nanoparticle (TNP) model that is composed of a nanoparticle with a hydrophobic tethered polymer chain. The shape of the nanoparticle can be tuned from a pure rigid cube to a soft sphere, mimicking the increase of grafting density on the nanocube surfaces. With this model, we study the self-assembly of TNPs in dilute solution using a dissipative particle dynamics simulation technique, and especially focus on the influence of particle shape, tethered chain length, and grafting density on the self-assembly structures. Some intriguing aggregates such as spherical micelles, pearl-necklace-like structures, cubic columnar structures, handshake structures, core–shell–corona micelles, and four-patch micelles have been observed when varying the interactions between cubes and solvents and the lengths of tethered chain. Modifying the nanocube surface with some hydrophilic grafted chains helps the TNPs form small micelles. Increased steric repulsion due to chain overlapping at larger grafting densities results in shape transformation of the nanoparticle from a rigid cube to a soft sphere. In these cases, the self-assembled structures are characterized by the packing of nanoparticles on the micelle surface, and the typical packing mode turns from rectangular (typical for cubes) to hexagonal (typical for spheres). The Royal Society of Chemistry 2019-01-11 /pmc/articles/PMC9059562/ /pubmed/35517998 http://dx.doi.org/10.1039/c8ra09635j Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Lu, Sheng-Fang
Li, Bing-Yu
Li, Yan-Chun
Lu, Zhong-Yuan
Computer simulation study on the self-assembly of tethered nanoparticles with tunable shapes
title Computer simulation study on the self-assembly of tethered nanoparticles with tunable shapes
title_full Computer simulation study on the self-assembly of tethered nanoparticles with tunable shapes
title_fullStr Computer simulation study on the self-assembly of tethered nanoparticles with tunable shapes
title_full_unstemmed Computer simulation study on the self-assembly of tethered nanoparticles with tunable shapes
title_short Computer simulation study on the self-assembly of tethered nanoparticles with tunable shapes
title_sort computer simulation study on the self-assembly of tethered nanoparticles with tunable shapes
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9059562/
https://www.ncbi.nlm.nih.gov/pubmed/35517998
http://dx.doi.org/10.1039/c8ra09635j
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